The reject table exercised the non-foldable element-type branch only at the def site; let and struct-field covered the foldable range branch alone. Add let_str and struct_str so both reject branches (foldable out-of-range int, non-foldable str) fire at all 3 wiring sites. A rune>u8 over-range row stays unexpressible: the lexer caps rune escapes at \xFF and does not decode multi-byte UTF-8 in a rune literal.
281 lines
9.6 KiB
C
281 lines
9.6 KiB
C
/*
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* 951_arrlit_elem_narrow_run — #251: narrow int/rune array-literal
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* elements to a declared [N]T element type, at the let / def /
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* struct-field init sites that #130 (test 920) left unwired.
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*
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* Pre-#251 state (verified by building both stages):
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* - cstage REJECTED in-range bare-int/rune array lits at the LOCAL
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* let, def, and struct-field sites ("init [4]i32 not assignable to
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* declared [4]u8"): the array-literal element type came from the
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* elements via type_default (int-lit→i32, rune-lit→rune) with no
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* declared-element-type propagation. Only the MODULE-level let site
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* (#130) accepted.
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* - wwstage was UNEVEN: local/module let correct, but the DEF path ran
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* NO init-assignability check and the N_STRUCTLIT head-stamp left
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* field assignability parked (#23) — so def + struct-field SILENTLY
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* over-accepted out-of-range and str→u8 elements (a rule-7
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* miscompile: out-of-range truncates).
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*
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* #251 fix = the int/rune analogue of coerce_floatlit, realised as the
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* EXISTING #130 accept-if-fits range-check (NOT a node-type restamp —
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* cgen drives the element WIDTH from the DECLARED type, so a restamp
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* would be dead code). Both stages now, at let/def/struct-field:
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* - foldable int/rune literal → defcastfits range-check vs declared T
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* (in-range accept; out-of-range REJECT loud, rule-7/Drew).
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* - non-foldable → type_assignable / isassignable to the element type.
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* - cstage: arrlit_init_fits wired at check.c clet (local let),
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* struct-field-init, and def-init.
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* - wwstage: checkarrlitfits (factored from checkletassign's inline
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* #130 block) called from the let path, the def path, and a TARGETED
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* array-field walk in the N_STRUCTLIT arm (the array-field
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* accept-if-fits ONLY — isolated from the parked #23 field walk).
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*
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* Element width is declared-type-driven at cgen, so the array literal
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* node keeps its [N]i32 / [N]rune type and no restamp is needed; the
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* cs==ww byte-id gate confirms the emitted bytes are u8-wide regardless.
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*
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* Accept rows (run + cs==ww byte-id), int and rune, across the 3 sites:
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* - let_int `let a:[4]u8=[65,66,67,68]; a[0]` → 65
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* - let_rune `let a:[4]u8=['A','B','C','D']; a[0]` → 65
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* - def_int `def D:[4]u8=[65,..]; D[0]` → 65
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* - def_rune `def D:[4]u8=['A',..]; D[0]` → 65
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* - struct_int `enc{m=[65,..]}; E.m[0]` → 65
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* - struct_rune `enc{m=['A',..]}; E.m[1]` → 66
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*
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* Reject rows (must FAIL build on BOTH stages — rule-7 loud reject).
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* Two reject branches per the predicate: the FOLDABLE range-check
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* (out-of-range int) and the NON-FOLDABLE element-type check (str→u8),
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* each exercised at all 3 sites. (A rune>u8 over-range row is not
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* expressible: the ww lexer caps rune escapes at \xFF=255 and does not
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* decode multi-byte UTF-8 in a rune literal, so every rune literal
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* already fits u8 — the foldable branch is identical for int and rune.)
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* - let_over `let a:[2]u8=[300,1]` (foldable: out of range)
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* - def_over `def D:[2]u8=[300,1]` (foldable: was a ww over-accept)
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* - struct_over `enc{m=[300,1]}` (foldable: was a ww over-accept)
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* - let_str `let a:[2]u8=["x","y"]` (non-foldable: str→u8)
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* - def_str `def D:[2]u8=["x","y"]` (non-foldable: was a ww over-accept)
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* - struct_str `enc{m=["x","y"]}` (non-foldable: was a ww over-accept)
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*/
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <unistd.h>
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#include <sys/stat.h>
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#include <sys/wait.h>
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static int
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runwait(const char *cmd)
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{
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int rc = system(cmd);
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if (rc == -1) return -1;
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if (WIFEXITED(rc)) return WEXITSTATUS(rc);
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return -1;
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}
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struct arow { const char *label; const char *src; int want_exit; };
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struct rrow { const char *label; const char *src; };
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static const struct arow accept_rows[] = {
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{ "let_int",
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"package main;\n"
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"export fn main() i32 = {\n"
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" let a: [4]u8 = [65, 66, 67, 68];\n"
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" return a[0]: i32;\n"
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"};\n", 65 },
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{ "let_rune",
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"package main;\n"
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"export fn main() i32 = {\n"
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" let a: [4]u8 = ['A', 'B', 'C', 'D'];\n"
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" return a[0]: i32;\n"
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"};\n", 65 },
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{ "def_int",
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"package main;\n"
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"def D: [4]u8 = [65, 66, 67, 68];\n"
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"export fn main() i32 = { return D[0]: i32; };\n", 65 },
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{ "def_rune",
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"package main;\n"
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"def D: [4]u8 = ['A', 'B', 'C', 'D'];\n"
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"export fn main() i32 = { return D[0]: i32; };\n", 65 },
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{ "struct_int",
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"package main;\n"
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"type enc = struct { m: [4]u8 };\n"
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"let E: enc = enc { m = [65, 66, 67, 68] };\n"
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"export fn main() i32 = { return E.m[0]: i32; };\n", 65 },
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{ "struct_rune",
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"package main;\n"
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"type enc = struct { m: [4]u8 };\n"
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"export fn main() i32 = {\n"
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" let e: enc = enc { m = ['A', 'B', 'C', 'D'] };\n"
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" return e.m[1]: i32;\n"
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"};\n", 66 },
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{ NULL, NULL, 0 }
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};
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static const struct rrow reject_rows[] = {
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{ "let_over",
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"package main;\n"
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"export fn main() i32 = { let a: [2]u8 = [300, 1]; return a[0]: i32; };\n" },
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{ "def_over",
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"package main;\n"
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"def D: [2]u8 = [300, 1];\n"
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"export fn main() i32 = { return D[0]: i32; };\n" },
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{ "struct_over",
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"package main;\n"
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"type enc = struct { m: [2]u8 };\n"
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"let E: enc = enc { m = [300, 1] };\n"
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"export fn main() i32 = { return E.m[0]: i32; };\n" },
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{ "let_str",
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"package main;\n"
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"export fn main() i32 = { let a: [2]u8 = [\"x\", \"y\"]; return a[0]: i32; };\n" },
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{ "def_str",
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"package main;\n"
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"def D: [2]u8 = [\"x\", \"y\"];\n"
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"export fn main() i32 = { return 0; };\n" },
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{ "struct_str",
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"package main;\n"
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"type enc = struct { m: [2]u8 };\n"
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"let E: enc = enc { m = [\"x\", \"y\"] };\n"
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"export fn main() i32 = { return E.m[0]: i32; };\n" },
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{ NULL, NULL }
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};
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static int
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slurp_eq(const char *a, const char *b)
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{
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FILE *fa = fopen(a, "rb");
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FILE *fb = fopen(b, "rb");
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if (!fa || !fb) { if (fa) fclose(fa); if (fb) fclose(fb); return -1; }
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int rc = 0;
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for (;;) {
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int ca = fgetc(fa);
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int cb = fgetc(fb);
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if (ca != cb) { rc = -1; break; }
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if (ca == EOF) break;
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}
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fclose(fa); fclose(fb);
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return rc;
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}
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int
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main(void)
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{
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const char *bin = getenv("BIN");
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if (!bin) bin = "out/bin";
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char absbin[1024];
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if (bin[0] != '/') {
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char cwd[1024];
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if (getcwd(cwd, sizeof cwd) == NULL) return 1;
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snprintf(absbin, sizeof absbin, "%s/%s", cwd, bin);
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bin = absbin;
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}
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char w6c[1100], w6c_ww[1100];
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snprintf(w6c, sizeof w6c, "%s/w6c", bin);
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snprintf(w6c_ww, sizeof w6c_ww, "%s/w6c_ww", bin);
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if (access(w6c_ww, X_OK) != 0) {
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fprintf(stderr, "arrnarrow: w6c_ww missing — cannot run the "
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"cs==ww gate (the whole point of this test)\n");
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return 1;
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}
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int n = 0, fail = 0;
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/* Accept rows: cstage build + run + cs==ww byte-id. */
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for (int i = 0; accept_rows[i].src; i++, n++) {
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char src[64];
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snprintf(src, sizeof src, "/tmp/wwan_%d_%d.ww", getpid(), i);
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FILE *f = fopen(src, "wb");
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if (f == NULL) { fail++; continue; }
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fputs(accept_rows[i].src, f);
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fclose(f);
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char tmpdir[64];
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snprintf(tmpdir, sizeof tmpdir, "/tmp/wwan_%d_d_%d",
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getpid(), i);
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mkdir(tmpdir, 0755);
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char cmd[2048];
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snprintf(cmd, sizeof cmd, "cd %s && %s/ww build %s",
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tmpdir, bin, src);
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if (runwait(cmd) != 0) {
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fprintf(stderr, "accept[%s]: cstage build failed\n",
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accept_rows[i].label);
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fail++; unlink(src); rmdir(tmpdir); continue;
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}
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char outbin[128];
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const char *base = strrchr(src, '/');
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base = base ? base + 1 : src;
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snprintf(outbin, sizeof outbin, "%s/%s", tmpdir, base);
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char *dot = strrchr(outbin, '.');
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if (dot && strcmp(dot, ".ww") == 0) *dot = '\0';
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int got = runwait(outbin);
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if (got != accept_rows[i].want_exit) {
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fprintf(stderr, "accept[%s]: exit %d, want %d\n",
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accept_rows[i].label, got, accept_rows[i].want_exit);
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fail++;
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}
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unlink(outbin); rmdir(tmpdir);
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char cs_s[64], ws_s[64];
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snprintf(cs_s, sizeof cs_s, "/tmp/wwan_%d_%d_cs.s",
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getpid(), i);
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snprintf(ws_s, sizeof ws_s, "/tmp/wwan_%d_%d_ww.s",
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getpid(), i);
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snprintf(cmd, sizeof cmd, "%s -o %s %s 2>/dev/null", w6c, cs_s, src);
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if (runwait(cmd) != 0) {
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fprintf(stderr, "accept[%s]: w6c failed\n", accept_rows[i].label);
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fail++; unlink(src); continue;
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}
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snprintf(cmd, sizeof cmd, "%s -o %s %s 2>/dev/null", w6c_ww, ws_s, src);
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if (runwait(cmd) != 0) {
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fprintf(stderr, "accept[%s]: w6c_ww failed\n", accept_rows[i].label);
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fail++; unlink(src); unlink(cs_s); continue;
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}
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if (slurp_eq(cs_s, ws_s) != 0) {
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fprintf(stderr, "accept[%s]: cs/ww .s DIFFER (rule-10)\n",
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accept_rows[i].label);
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fail++;
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}
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unlink(src); unlink(cs_s); unlink(ws_s);
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}
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/* Reject rows: BOTH stages must fail to build (loud reject). */
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for (int i = 0; reject_rows[i].src; i++, n++) {
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char src[64];
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snprintf(src, sizeof src, "/tmp/wwrn_%d_%d.ww", getpid(), i);
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FILE *f = fopen(src, "wb");
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if (f == NULL) { fail++; continue; }
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fputs(reject_rows[i].src, f);
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fclose(f);
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char cmd[2048], dst[80];
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snprintf(dst, sizeof dst, "/tmp/wwrn_%d_%d.s", getpid(), i);
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snprintf(cmd, sizeof cmd, "%s -o %s %s 2>/dev/null", w6c, dst, src);
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int cs_rc = runwait(cmd);
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snprintf(cmd, sizeof cmd, "%s -o %s %s 2>/dev/null", w6c_ww, dst, src);
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int ww_rc = runwait(cmd);
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if (cs_rc == 0) {
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fprintf(stderr, "reject[%s]: cstage ACCEPTED (want reject)\n",
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reject_rows[i].label);
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fail++;
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}
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if (ww_rc == 0) {
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fprintf(stderr, "reject[%s]: wwstage ACCEPTED (want reject)\n",
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reject_rows[i].label);
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fail++;
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}
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unlink(src); unlink(dst);
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}
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if (fail) {
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fprintf(stderr, "%d/%d arrlit-elem-narrow tests failed\n",
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fail, n);
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return 1;
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}
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printf("arrnarrow: %d/%d ok (accept: run + cs==ww; reject: both-stage fail)\n",
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n, n);
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return 0;
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}
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